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Laser-generated focused ultrasound transducer using a perforated photoacoustic lens for tissue characterization

机译:激光产生的聚焦超声换能器使用穿孔光声镜头进行组织表征

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摘要

We demonstrate a laser-generated focused ultrasound (LGFU) transducer using a perforated-photoacoustic (PA) lens and a piezoelectric probe hydrophone suitable for high-frequency ultrasound tissue characterization. The perforated-PA lens employed a centrally located hydrophone to achieve a maximum directional response at 0° from the axial direction of the lens. Under pulsed laser irradiation, the lens produced LGFU pulses with a frequency bandwidth of 6–30 MHz and high-peak pressure amplitudes of up to 46.5 MPa at a 70-µm lateral focal width. Since the hydrophone capable of covering the transmitter frequency range (∼20 MHz) was integrated with the lens, this hybrid transducer differentiated tissue elasticity by generating and detecting high-frequency ultrasound signals. Backscattered (BS) waves from excised tissues (bone, skin, muscle, and fat) were measured and also confirmed by laser-flash shadowgraphy. We characterized the LGFU-BS signals in terms of mean frequency and spectral energy in the frequency domain, enabling to clearly differentiate tissue types. Tissue characterization was also performed with respect to the LGFU penetration depth (from the surface, 1-, and 2-mm depth). Despite acoustic attenuation over the penetration depth, LGFU-BS characterization shows consistent results that can differentiate the elastic properties of tissues. We expect that the proposed transducer can be utilized for other tissue types and also for non-destructive evaluation based on the elasticity of unknown materials.
机译:我们展示了一种使用穿孔光声(PA)镜片的激光产生的聚焦超声(LGFU)换能器,以及适用于高频超声组织表征的压电探针室。穿孔PA镜片采用中心位的水听器,从透镜的轴向方向在0°处实现最大方向响应。在脉冲激光照射下,透镜在70微米的横向焦距下产生具有6-30MHz的频率带宽和高达46.5MPa的频率带宽的LGFU脉冲。由于能够覆盖发射机频率范围(〜20MHz)的水听器与透镜集成,因此通过产生和检测高频超声信号来脱节组织弹性。测量来自切除的组织(骨,皮肤,肌肉和脂肪)的反向散射(BS)波,并通过激光闪光影子造影证实。我们以频域的平均频率和光谱能量表征LGFU-BS信号,使得能够清楚地区分组织类型。还相对于LGFU渗透深度(来自表面,1-和2mm深度)进行组织表征。尽管通过渗透深度声学衰减,但LGFU-BS表征显示了一致的结果,可以区分组织的弹性性质。我们预期,所提出的换能器可用于其他组织类型,以及基于未知材料的弹性的非破坏性评估。

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